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Dive into the research topics where E.M. Campbell is active.

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Featured researches published by E.M. Campbell.


Physics of Plasmas | 2016

Understanding the effects of laser imprint on plastic-target implosions on OMEGA

S. X. Hu; D.T. Michel; A.K. Davis; R. Betti; P. B. Radha; E.M. Campbell; D. H. Froula; C. Stoeckl

Understanding the effects of laser imprint on target performance is critical to the success of direct-drive inertial confinement fusion. Directly measuring the disruption caused by laser imprints to the imploding shell and hot-spot formation, in comparison with multidimensional radiation–hydrodynamic simulations, can provide a clear picture of how laser nonuniformities cause target performance to degrade. With the recently developed x-ray self-emission imaging technique and the state-of-the-art physics models recently implemented in the two-dimensional hydrocode DRACO, a systematic study of laser-imprint effects on warm target implosions on OMEGA has been performed using both experimental results and simulations. By varying the laser-picket intensity, the imploding shells were set at different adiabats (from α = 2 to α = 6). As the shell adiabats decreased, it was observed that (1) the measured shell thickness at the time the hot spot lit up became larger than the uniform one-dimensional (1-D) predictions...


Physics of Plasmas | 2015

Diagnosing laser-preheated magnetized plasmas relevant to magnetized liner inertial fusion

A. J. Harvey-Thompson; Adam B Sefkow; T. Nagayama; Mingsheng Wei; E.M. Campbell; G. Fiksel; P.-Y. Chang; Jonathan R. Davies; D.H. Barnak; Vladimir Yu. Glebov; P. Fitzsimmons; Julie Fooks; B.E. Blue

We present a platform on the OMEGA EP Laser Facility that creates and diagnoses the conditions present during the preheat stage of the MAGnetized Liner Inertial Fusion (MagLIF) concept. Experiments were conducted using 9 kJ of 3ω (355 nm) light to heat an underdense deuterium gas (electron density: 2.5×1020 cm−3=0.025 of critical density) magnetized with a 10 T axial field. Results show that the deuterium plasma reached a peak electron temperature of 670 ± 140 eV, diagnosed using streaked spectroscopy of an argon dopant. The results demonstrate that plasmas relevant to the preheat stage of MagLIF can be produced at multiple laser facilities, thereby enabling more rapid progress in understanding magnetized preheat. Results are compared with magneto-radiation-hydrodynamics simulations, and plans for future experiments are described.


Physical Review Letters | 2016

Demonstration of fuel hot-spot pressure in excess of 50 Gbar for direct-drive, layered deuterium-tritium implosions on OMEGA

S. P. Regan; V.N. Goncharov; I.V. Igumenshchev; T. C. Sangster; R. Betti; Arijit Bose; T. R. Boehly; M.J. Bonino; E.M. Campbell; D. Cao; T.J.B. Collins; R. S. Craxton; A. K. Davis; J. A. Delettrez; D. H. Edgell; R. Epstein; C.J. Forrest; J. A. Frenje; D. H. Froula; M. Gatu Johnson; V. Yu. Glebov; D. R. Harding; M. Hohenberger; S. X. Hu; D. Jacobs-Perkins; R. Janezic; Max Karasik; R. L. Keck; J. H. Kelly; Terrance J. Kessler


Physical Review E | 2016

Core conditions for alpha heating attained in direct-drive inertial confinement fusion

A. Bose; K. M. Woo; R. Betti; E.M. Campbell; D. Mangino; A. R. Christopherson; R.L. McCrory; R. Nora; S. P. Regan; V.N. Goncharov; T. C. Sangster; C.J. Forrest; J. A. Frenje; M. Gatu Johnson; V. Yu. Glebov; J. P. Knauer; F. J. Marshall; C. Stoeckl; W. Theobald


Journal of Fusion Energy | 2016

The Role of Magnetized Liner Inertial Fusion as a Pathway to Fusion Energy

Daniel Brian Sinars; E.M. Campbell; M. E. Cuneo; Christopher A. Jennings; Kyle Peterson; Adam B Sefkow


Plasma Physics and Controlled Fusion | 2018

Measuring implosion velocities in experiments and simulations of laser-driven cylindrical implosions on the OMEGA laser

E C Hansen; D.H. Barnak; R. Betti; E.M. Campbell; P-Y Chang; J.R. Davies; V. Yu. Glebov; J. P. Knauer; J Peebles; S. P. Regan; Adam B Sefkow


Physical Review Letters | 2018

Subpercent-Scale Control of 3D Low Modes of Targets Imploded in Direct-Drive Configuration on OMEGA

D.T. Michel; I.V. Igumenshchev; Davis Ak; D. H. Edgell; D. H. Froula; D. Jacobs-Perkins; V.N. Goncharov; S. P. Regan; A. Shvydky; E.M. Campbell


Nuclear Fusion | 2018

The National Direct-Drive Inertial Confinement Fusion Program

S. P. Regan; V.N. Goncharov; Thomas C. Sangster; E.M. Campbell; R. Betti; Jason Bates; Katelynn Bauer; Tom Bernat; Suhas Dattatreya Bhandarkar; T. R. Boehly; M.J. Bonino; A. Bose; Duc Cao; Raymond Chapman; Thomas Chapman; G. W. Collins; T.J.B. Collins; R. S. Craxton; J. A. Delettrez; Dana H Edgell; Reuben Epstein; M. Farrell; C.J. Forrest; R.K. Follett; Johan A. Frenje; D. H. Froula; Maria Gatu Johnson; Chuck Gibson; Clement Goyon; V. Yu. Glebov


Bulletin of the American Physical Society | 2017

Experimental Results from the High-Adiabat Cryogenic Implosion Campaign on OMEGA

J. P. Knauer; R. Betti; V. Gopalaswamy; M.J. Bonino; E.M. Campbell; T.J.B. Collins; C.J. Forrest; V. Yu. Glebov; V.N. Goncharov; D. R. Harding; J.A. Marozas; F. J. Marshall; P.W. McKenty; P. B. Radha; S.P. Regan; T. C. Sangster; C. Stoeckl


Bulletin of the American Physical Society | 2017

Evaluation of the Revolver Ignition Design at the National Ignition Facility Using Polar-Direct-Drive Illumination

P.W. McKenty; T.J.B. Collins; J.A. Marozas; E.M. Campbell; K. Molvig; Mark J. Schmitt

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R. Betti

University of Rochester

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S. P. Regan

University of Rochester

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Adam B Sefkow

Sandia National Laboratories

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C. Stoeckl

University of Rochester

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C.J. Forrest

University of Rochester

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D. H. Froula

Lawrence Livermore National Laboratory

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Daniel Brian Sinars

Sandia National Laboratories

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